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Paper · arXiv 2506.10857

VRBench: A Benchmark for Multi-Step Reasoning in Long Narrative Videos

Jiashuo Yu, Yue Wu, Meng Chu, Zhifei Ren, Zizheng Huang, Pei Chu, Ruijie Zhang, Yinan He, Qirui Li, Songze Li, Zhenxiang Li, Zhongying Tu, Conghui He, Yu Qiao, Yali Wang, Yi Wang, Limin Wang

30 upvotesJune 12, 2025arXiv 预印本
AI 摘要

VRBench is a long narrative video benchmark designed to evaluate models' multi-step reasoning and procedural validity through human-labeled question-answering pairs and a human-AI collaborative framework with a multi-phase evaluation pipeline.

VRBenchmulti-step reasoningtemporal reasoningprocedural validitylong videoshuman-labeledmulti-step question-answeringexpert inter-rater reviewingcoherent reasoning chainsevent attributionimplicit inferencemulti-phase evaluationprogress-level LLM-guided scoring metricLLMsVLMs

Abstract

We present VRBench, the first long narrative video benchmark crafted for evaluating large models' multi-step reasoning capabilities, addressing limitations in existing evaluations that overlook temporal reasoning and procedural validity. It comprises 1,010 long videos (with an average duration of 1.6 hours), along with 9,468 human-labeled multi-step question-answering pairs and 30,292 reasoning steps with timestamps. These videos are curated via a multi-stage filtering process including expert inter-rater reviewing to prioritize plot coherence. We develop a human-AI collaborative framework that generates coherent reasoning chains, each requiring multiple temporally grounded steps, spanning seven types (e.g., event attribution, implicit inference). VRBench designs a multi-phase evaluation pipeline that assesses models at both the outcome and process levels. Apart from the MCQs for the final results, we propose a progress-level LLM-guided scoring metric to evaluate the quality of the reasoning chain from multiple dimensions comprehensively. Through extensive evaluations of 12 LLMs and 16 VLMs on VRBench, we undertake a thorough analysis and provide valuable insights that advance the field of multi-step reasoning.

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